Compressive behavior of recycled aggregate concrete with different stirrup confinements subjected to axial loading after freeze–thaw cycles

Chunhua LI , Qingmei YANG , Haifeng YANG , Jiasheng JIANG , Fukun LI

Front. Struct. Civ. Eng. ›› 2025, Vol. 19 ›› Issue (11) : 1916 -1934.

PDF (5473KB)
Front. Struct. Civ. Eng. ›› 2025, Vol. 19 ›› Issue (11) : 1916 -1934. DOI: 10.1007/s11709-025-1231-2
RESEARCH ARTICLE

Compressive behavior of recycled aggregate concrete with different stirrup confinements subjected to axial loading after freeze–thaw cycles

Author information +
History +
PDF (5473KB)

Abstract

Recycled aggregate concrete (RAC) undergoes irreversible freeze–thaw damage, with more complex and stochastic crack propagation than natural aggregate (NA). Consequently, steel stirrups are commonly used to enhance its durability and mechanical performance. 36 specimens with four recycled aggregate (RA) replacement ratios (0%, 30%, 70%, and 100%) and three stirrup types (no stirrup restraint (PCC), rectangular stirrup restraint (RSC), spiral stirrup restraint (SSC)) were therefore tested for uniaxial compression after 100 freeze–thaw cycles. Afterward, the stress–strain behavior of specimens was analyzed. The results demonstrate that RA exhibits superior resistance to freeze–thaw cycles compared to NA under similar strength, the peak stress increases with higher RA replacement ratios. SSC exhibits a stronger strengthening effect than RSC due to the uniform confinement of spiral stirrups. Lateral strain increases with axial strain, following a cubic nonlinear relationship. Subsequently, by employing the cohesive elastic ring model and the modified elastic beam theory, the lateral effective stress of RSC and SSC can be accurately predicted, with a standard deviation of 0.113 and an average absolute error of 0.186. A novel compressive damage constitutive model for RAC, incorporating lateral stress effects, shows strong agreement with test stress–strain curves, with R2 > 0.91. Finally, a comparison of bearing capacity calculations shows the proposed method aligns best with experimental results.

Graphical abstract

Keywords

RAC / stress–strain curves / peak stress / lateral effective stress / damage constitutive model

Cite this article

Download citation ▾
Chunhua LI, Qingmei YANG, Haifeng YANG, Jiasheng JIANG, Fukun LI. Compressive behavior of recycled aggregate concrete with different stirrup confinements subjected to axial loading after freeze–thaw cycles. Front. Struct. Civ. Eng., 2025, 19(11): 1916-1934 DOI:10.1007/s11709-025-1231-2

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Salesa A , Esteban L , Lopez-Julian P L , Perez-Benedicto J A , Acero-Oliete A , Pons-Ruiz A . Evaluation of characteristics and building applications of multi-recycled concrete aggregates from precast concrete rejects. Materials, 2022, 15(16): 5714

[2]

Saberi S , Mohamed A , Eltwati A S . Mechanical and physical properties of recycled concrete aggregates for road base materials. Journal of Physics: Conference Series, 2021, 1973: 012236

[3]

Xiao J Z , Wang C H , Ding T , Akbarnezhad A . A recycled aggregate concrete high-rise building: Structural performance and embodied carbon footprint. Journal of Cleaner Production, 2018, 199: 868–881

[4]

Yang W R , Huang Y W , Li C W , Tang Z , Quan W , Xiong X , He J , Wu W . Damage prediction and long-term cost performance analysis of glass fiber recycled concrete under freeze–thaw cycles. Case Studies in Construction Materials, 2024, 21: e03795

[5]

Guo H , Shi C J , Guan X M , Zhu J , Ding Y , Ling T C , Zhang H , Wang Y . Durability of recycled aggregate concrete––A review. Cement and Concrete Composites, 2018, 89: 251–259

[6]

Guo S Q , Ding Y H , Xu P , Wu J , Bao J . Stress–strain relationship of steel fiber reinforced fully recycled coarse/fine aggregate concrete under cyclic loading. Case Studies in Construction Materials, 2025, 22: e04139

[7]

Wang Y G , Xie M , Zhang J . Mechanical properties and damage model of modified recycled concrete under freeze–thaw cycles. Journal of Building Engineering, 2023, 78: 107680

[8]

Omar T , Sherif Y , Akmal A , Mohamed E . Sustainable concrete production: The potential of utilizing recycled waste materials. Journal of Building Engineering, 2024, 98: 111467

[9]

Olorunsogo F , Padayachee N . Performance of recycled aggregate concrete monitored by durability indexes. Cement and Concrete Research, 2002, 32(2): 179–185

[10]

Pereiro-Barceló J , Lenz E , Torres B , Estevan L . Mechanical properties of recycled aggregate concrete reinforced with conventional and recycled steel fibers and exposed to high temperatures. Construction & Building Materials, 2024, 452: 138976

[11]

Chen Y L , Wang Q , Ye P H , Zhang W . Experimental and damage modeling research on direct shear behavior of recycled concrete with pebble/gravel coarse aggregate. Journal of Building Engineering, 2024, 98: 111218

[12]

Gao S , Li Q Y , Luo J L . Fractal characteristic of recycled aggregate and its influence on physical property of recycled aggregate concrete. Reviews on Advanced Materials Science, 2021, 60(1): 663–677

[13]

Arezoumandi M , Smith A , Volz J A , Khayat K H . An experimental study on flexural strength of reinforced concrete beams with 100% recycled concrete aggregate. Engineering Structures, 2015, 88: 154–162

[14]

Mohamad N , Khalifa H , Abdul Samad A A , Mendis P , Goh W I . Structural performance of recycled aggregate in CSP slab subjected to flexure load. Construction & Building Materials, 2016, 115: 669–680

[15]

Saribas I , Goksu C , Binbir E , Ilki A . Seismic performance of full-scale RC columns containing high proportion recycled aggregate. Bulletin of Earthquake Engineering, 2019, 17(11): 6009–6037

[16]

Zhang J W , Zhao Y R , Li X Y , Li Y , Dong H . Experimental study on seismic performance of recycled aggregate concrete shear wall with high-strength steel bars. Structures, 2021, 33: 1457–1472

[17]

Letelier Gonzalez V A , Moriconi G . The influence of recycled concrete aggregates on the behavior of beam–column joints under cyclic loading. Engineering Structures, 2014, 60: 148–154

[18]

Xu Y Q , Ye H S , Yuan Q , Shi C , Gao Y , Fu Q . The durability of concrete subject to mechanical load coupled with freeze–thaw cycles: A review. Archives of Civil and Mechanical Engineering, 2022, 22(1): 47

[19]

Lin H W , Han Y F , Liang S M , Gong F , Han S , Shi C , Feng P . Effects of low temperatures and cryogenic freeze–thaw cycles on concrete mechanical properties: A literature review. Construction & Building Materials, 2022, 345: 128287

[20]

Zahedi Z , Komar A , Sanchez L , Boyd A . Global assessment of concrete specimens subjected to freeze–thaw damage. Cement and Concrete Composites, 2022, 133: 104716

[21]

Zhang P , Wittmann F , Vogel M , Müller H S , Zhao T . Influence of freeze–thaw cycles on capillary absorption and chloride penetration into concrete. Cement and Concrete Research, 2017, 100: 60–67

[22]

Richardson A , Coventry K , Bacon J . Freeze/thaw durability of concrete with recycled demolition aggregate compared to virgin aggregate concrete. Journal of Cleaner Production, 2011, 19(2–3): 272–277

[23]

Ma Z M , Zhu F Z , Ba G Z . Effects of freeze–thaw damage on the bond behavior of concrete and enhancing measures. Construction & Building Materials, 2019, 196: 375–385

[24]

Wang Y R , Cao Y B , Zhang P , Ma Y , Zhao T , Wang H , Zhang Z . Water absorption and chloride diffusivity of concrete under the coupling effect of uniaxial compressive load and freeze–thaw cycles. Construction & Building Materials, 2019, 209: 566–576

[25]

Yu T , Hu Y M , Teng J G . Cyclic lateral response of FRP-confined circular concrete-filled steel tubular columns. Journal of Constructional Steel Research, 2016, 124: 12–22

[26]

Yang D , Lin S Q , Zhao Y G . Components interaction mechanism and strength of axially loaded FRP-confined concrete stub columns from energy path perspective. Structures, 2025, 71: 107981

[27]

Tobbi H , Farghaly A S , Benmokrane B . Strength model for concrete columns reinforced with fiber-reinforced polymer bars and ties. ACI Structural Journal, 2014, 111(4): 789–798

[28]

Yang H F , Li M H , Jiang J S , Zhang Y , Mei J , Deng Z . Mechanical properties of steel reinforced coral aggregate concrete column under uniaxial compression. Construction & Building Materials, 2023, 369: 130508

[29]

Yang H F , Liu C L , Jiang J S . Damage constitutive model of stirrup-confined recycled aggregate concrete after freezing and thawing cycles. Construction & Building Materials, 2020, 253: 119100

[30]

Zhang Y R , Wei Y , Miao K T , Li B . A novel seawater and sea sand concrete-filled FRP-carbon steel composite tube column: Cyclic axial compression behaviour and modeling. Engineering Structures, 2022, 252: 113531

[31]

Qian K , Liang S L , Xiong X Y , Fu F , Fang Q . Quasi-static and dynamic behavior of precast concrete frames with high performance dry connections subjected to loss of a penultimate column scenario. Engineering Structures, 2020, 205: 110115

[32]

Weng Y H , Qian K , Fu F , Fang Q . Numerical investigation on load redistribution capacity of flat slab substructures to resist progressive collapse. Journal of Building Engineering, 2020, 29: 101109

[33]

Deng X F , Liang S L , Fu F , Qian K . Effects of high-strength concrete on progressive collapse resistance of reinforced concrete frame. Journal of Structural Engineering, 2020, 146(6): 04020078

[34]

Assa B , Nishiyama M , Watanabe F . New approach for modeling confined concrete. II: Rectangular columns. Journal of Structural Engineering, 2001, 127(7): 751–757

[35]

Ren X D , Liu K , Li J , Gao X L . Compressive behavior of stirrup-confined concrete under dynamic loading. Construction & Building Materials, 2017, 154: 10–22

[36]

Sheikh S A , Uzumeri S M . Analytical model for concrete confinement in tied columns. Journal of the Structural Division, 1982, 108(12): 2703–2722

[37]

Rong C , Shi Q X . Analysis constitutive models for actively and passively confined concrete. Composite Structures, 2021, 256: 113009

[38]

Saatcioglu M , Razvi S . Strength and ductility of confined concrete. Journal of Structural Engineering, 1992, 118(6): 1590–1607

[39]

GB/T25177-2010. Recycled Coarse Aggregate for Concrete. Beijing: General Administration of Quality Supervision, Inspection and Quarantine of the People’s Republic of China, 2011

[40]

GB/T228.1-2010. Metallic materials-Tensile Testing-Part 1: Method of Test at Room Temperature. Beijing: General Administration of Quality Supervision, Inspection and Quarantine of the People’s Republic of China, 2011

[41]

GB/T50107-2010. Standard for Test and Evaluation of Concrete Compression Strength. Beijing: Ministry of Housing and Urban-Rural Development of the People’s Republic of China, 2010

[42]

GB/T50082-2024. Standard for Long-term Performance and Durability Testing Method of Ordinary Concrete. Beijing: Ministry of Housing and Urban-Rural Development of the People’s Republic of China, 2025

[43]

Wang Y , Yang G F , Zhang J W , Cao C , Jin F . Mechanical properties of uniaxial compression of total tailings paste under lateral restraint effect. Construction & Building Materials, 2024, 412: 134702

[44]

Légeron F , Paultre P . Uniaxial confinement model for normal- and high-strength concrete columns. Journal of Structural Engineering, 2003, 129(2): 241–252

[45]

TimoshenkoSGoodierJAbramsonH. Theory of Elasticity. New York, NY: McGraw-Hill, 1970, 37

[46]

Campione G . Analytical model for high-strength concrete columns with square cross-section. Structural Engineering and Mechanics, 2008, 28(3): 295–316

[47]

Campione G , Cannella F , Minafò G . A simple model for the calculation of the axial load-carrying capacity of corroded RC columns. Materials and Structures, 2016, 49(5): 1935–1945

[48]

Mander J , Priestley M , Park R . Theoretical stress−strain model for confined concrete. Journal of Structural Engineering, 1988, 114(8): 1804–1826

[49]

Braga F , Gigliotti R , Laterza M . Analytical stress−strain relationship for concrete confined by steel stirrups and/or FRP jackets. Journal of Structural Engineering, 2006, 132(9): 1402–1416

[50]

West J , Ibrahim A , Hindi R . Analytical compressive stress−strain model for high-strength concrete confined with cross-spirals. Engineering Structures, 2016, 113: 362–370

[51]

Campione G , Fossetti M , Minafò G , Papia M . Influence of steel reinforcements on the behavior of compressed high strength R. C. circular columns. Engineering Structures, 2012, 34: 371–382

[52]

Yang H F , Yang Q M , Luo J H , Jiang J , Mei J , Liu A . Shear strength and failure criterion of geopolymer coral aggregate concrete under compression-shear loading. Journal of Building Engineering, 2023, 76: 107241

[53]

Jiang J S , Yang H F , Deng Z H , Zhang Y . Damage-constitutive model for seawater coral concrete using different stirrup confinements subjected to axial loading. Frontiers of Structural and Civil Engineering, 2023, 17(3): 429–447

[54]

Cui T , He H X , Yan W M , Zhou D . Compression damage constitutive model of hybrid fiber reinforced concrete and its experimental verification. Construction & Building Materials, 2020, 264: 120026

[55]

Sun C W , Zhu B W , Luo T , Liu K , Wei T , Yang S . Uniaxial compressive mechanical properties and stress–strain model for roller-compacted concrete with initial damage subjected to freeze–thaw cycles. Construction & Building Materials, 2024, 411: 134256

[56]

Kristombu BadugeSMendisPNgoT. Stress–strain relationship for very-high strength concrete (> 100 MPa) confined by lateral reinforcement. Engineering Structures, 2018, 177: 795–808

[57]

EN1992-1-1:2004. Eurocode 2: Design of Concrete Structures-Part 1-1: General Rules and Rules for Buildings. Brussels: European Committee for Standardization, 2004

[58]

ACI318M–2011. Building Code Requirements for Structural Concrete and Commentary. Farmington Hills, MI: American Concrete Institute, 2011

RIGHTS & PERMISSIONS

Higher Education Press

AI Summary AI Mindmap
PDF (5473KB)

20

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/